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BROADBAND AND HIGH-GAIN PLANAR VIVALDI ANTENNAS BASED ON INHOMOGENEOUS ANISOTROPIC ZERO-INDEX METAMATERIALS
Author(s) -
Bin Zhou,
Hui Li,
Xiaying Zou,
Tie Jun Cui
Publication year - 2011
Publication title -
electromagnetic waves
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.437
H-Index - 89
eISSN - 1559-8985
pISSN - 1070-4698
DOI - 10.2528/pier11072710
Subject(s) - metamaterial , broadband , vivaldi antenna , planar , metamaterial antenna , optics , index (typography) , physics , zero (linguistics) , anisotropy , materials science , directional antenna , computer science , radiation pattern , slot antenna , telecommunications , antenna (radio) , computer graphics (images) , linguistics , philosophy , world wide web
Vivaldi antennas have broad applications in real practice due to the ultra wideband properties. However, their gain and directivity are relatively low. In this paper, a new method is presented to improve the gain and directivity of Vivaldi antennas in a broad band using inhomogeneous and anisotropic (IA) zero-index metamaterials (ZIM). ZIM have the ability to enhance the antenna directivity; anisotropic ZIM with only one component of the permittivity or permeability tensor approaching to zero can make impedance match to improve the radiation e-ciency; and IA-ZIM can broaden the frequency bandwidth. Single- and multiple-layered planar IA-ZIM have been analyzed, designed, and fabricated, which can be embedded into the original Vivaldi antenna smoothly and compactly. The IA- ZIM-based Vivaldi antennas have good features of high gain, high directivity, low return loss, and broad bandwidth. Compared to the original Vivaldi antenna, the measurement results show that the gain has been increased by 3dB and the half-power beam width has been decreased by 20 degrees with the re∞ection coe-cient less than i10dB from 9.5GHz to 12.5GHz after using IA-ZIM.

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